Related Experiment Video
Updated: May 9, 2026

Advanced 3D Liver Models for In vitro Genotoxicity Testing Following Long-Term Nanomaterial Exposure
Published on: June 5, 2020
Multi-platform genotoxicity analysis of silver nanoparticles in the model cell line CHO-K1
Xiumei Jiang1, Rasmus Foldbjerg, Teodora Miclaus
1National Center for Nanoscience and Technology, Chinese Academy of Science, No. 11, Beiyitiao Zhongguancun, Beijing 100190, China.
Abstract:
Investigation of the genotoxic potential of nanomaterials is essential to evaluate if they pose a cancer risk for exposed workers and consumers. The Chinese hamster ovary cell line CHO-K1 is recommended by the OECD for use in the micronucleus assay and is commonly used for genotoxicity testing. However, studies investigating if this cell line is suitable for the genotoxic evaluation of nanomaterials, including induction of DNA adduct and micronuclei formation, are rare and for silver nanoparticles (Ag NPs) missing. Therefore, we here systematically investigated DNA and chromosomal damage induced by BSA coated Ag NPs (15.9±7.6 nm) in CHO-K1 cells in relation to cellular uptake and intracellular localization, their effects on mitochondrial activity and production of reactive oxygen species (ROS), cell cycle, apoptosis and necrosis. Ag NPs are taken up by CHO-K1 cells and are presumably translocated into endosomes/lysosomes. Our cytotoxicity studies demonstrated a concentration-dependent decrease of mitochondrial activity and increase of intracellular reactive oxygen species (ROS) in CHO-K1 cells following exposure to Ag NPs and Ag⁺ (0-20 μg/ml) for 24h. Annexin V/propidium iodide assay showed that Ag NPs and Ag⁺ induced apoptosis and necrosis, which is in agreement with an increased fraction of cells in subG1 phase of the cell cycle. Genotoxicity studies showed that Ag NPs but also silver ions (Ag⁺) induced bulky-DNA adducts, 8-oxodG and micronuclei formation in a concentration-dependent manner, however, there were quantitative and qualitative differences between the particulate and ionic form of silver. Taken together, our multi-platform genotoxicity and cytotoxicity analysis demonstrates that CHO-K1 cells are suitable for the investigation of genotoxicity of nanoparticles like Ag NPs.
Insights
Chinese hamster ovary (CHO-K1) cells are suitable for testing silver nanoparticle (Ag NP) genotoxicity. This study confirms Ag NPs induce DNA damage and cell death, validating CHO-K1 cells for nanomaterial safety assessments.
Area of Science:
- Nanotoxicology
- Genotoxicity Testing
- Cell Biology
Background:
- Nanomaterial genotoxicity assessment is crucial for evaluating cancer risks.
- The OECD-recommended Chinese hamster ovary (CHO-K1) cell line is widely used for genotoxicity testing.
- Limited data exists on CHO-K1 cell suitability for nanomaterial genotoxicity, especially for silver nanoparticles (Ag NPs).
Purpose of the Study:
- To systematically investigate DNA and chromosomal damage induced by BSA-coated Ag NPs in CHO-K1 cells.
- To evaluate Ag NP effects on cellular uptake, ROS production, mitochondrial activity, cell cycle, and apoptosis/necrosis.
- To determine the suitability of CHO-K1 cells for nanomaterial genotoxicity evaluation.
Main Methods:
- Exposure of CHO-K1 cells to Ag NPs and silver ions (Ag⁺).
- Assessment of cellular uptake, ROS production, mitochondrial activity, cell cycle, apoptosis, and necrosis.
- Genotoxicity assays including DNA adduct formation (8-oxodG) and micronucleus formation.
Main Results:
- Ag NPs were taken up by CHO-K1 cells and induced concentration-dependent cytotoxicity, increased ROS, apoptosis, and necrosis.
- Both Ag NPs and Ag⁺ induced DNA adducts and micronuclei formation, with quantitative and qualitative differences observed.
- Cell cycle analysis showed an increased subG1 phase fraction, consistent with apoptosis/necrosis.
Conclusions:
- CHO-K1 cells are suitable for investigating the genotoxicity of nanoparticles like Ag NPs.
- Ag NPs induce DNA and chromosomal damage, as well as cytotoxicity, in CHO-K1 cells.
- The study provides a comprehensive analysis supporting the use of CHO-K1 cells in nanomaterial safety evaluations.
Related Concept Videos
In vitro Mutagenesis
Mutagenicity and Carcinogenicity
In-vitro Mutagenesis

